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Hi everyone I have implemented a solution to convert a value from binary to hexidecimal. So I was wondering if there could be more elegant solution(pretty sure there is) than mine. I have tested the program and it is working. Here is the code:

public class BinaryToHex
{
    public static void main(String[] args) 
    {
        String binary = "1110001101";
        binaryToHex(binary);
        //38d
    }

    public static void binaryToHex(String binaryValue)
    {
        StringBuilder sb = new StringBuilder(binaryValue);

        System.out.println("Original StringBuilder: " + sb);
        sb.reverse();

        System.out.println("reversed StringBuilder: " + sb);

        int convert = binaryValue.length();
        System.out.println("Legth of the binary: " +  convert);

        if(convert % 4 != 0)
        {
            while(convert % 4 != 0)
            {


                sb.append(0);
                convert ++;

                System.out.println("StringBuilder in loop: " + sb);
                System.out.println("Convert in loop: " + convert);
            }
        }
        sb.reverse();
        System.out.println("Ready StringBuilder for use? " + sb);
        String test = null;
//      String test = sb.toString();
        for(int i=0; i<sb.length(); i ++)
        {
            if(i % 4 == 0)
            {
                test = sb.substring(i, (i+4));
                System.out.print(getChar(test));
            }
        }
    }

    public static String getChar(String num)
    {
        String number = "";
        switch(num)
        {
            case "0000" : number = "0"; break;
            case "0001" : number = "1"; break;
            case "0010" : number = "2"; break;
            case "0011" : number = "3"; break;
            case "0100" : number = "4"; break;
            case "0101" : number = "5"; break;
            case "0110" : number = "6"; break;
            case "0111" : number = "7"; break;
            case "1000" : number = "8"; break;
            case "1001" : number = "9"; break;
            case "1010" : number = "A"; break;
            case "1011" : number = "B"; break;
            case "1100" : number = "C"; break;
            case "1101" : number = "D"; break;
            case "1110" : number = "E"; break;
            case "1111" : number = "F"; break;

        }
        return number;
    }

}
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Are you looking for a more elegant implemtation, or just a library function that does the same ? –  Brian Agnew Aug 1 '12 at 13:19
    
I know about the library function that is solving the problem, what I am looking for is a better implementation –  Doesn't Matter Aug 1 '12 at 13:20
    
Yours should handle binary-formatted strings with less than 4 characters. Also (and related), instead of your switch statement, it would be more elegant to "parse" each bit IMO, shifting as you go. If you don't want to convert to an integer between the binary and hex, consider changing the switch statement to a Map lookup. Is this homework? If so, you should tag it as such. –  Rob I Aug 1 '12 at 13:27
    
If it was a homework, would i post it here after i have finish it –  Doesn't Matter Aug 1 '12 at 13:30
1  
Sure, why not? You haven't given any other explanation for why using a perfectly-suited library function is unacceptable. –  Rob I Aug 1 '12 at 13:33

5 Answers 5

up vote 1 down vote accepted

It was an funny exercise to do things we take for granted in a library implementation. You can improve you algo a lot by using counters to track where you are and prevent the reverse operations. Also the switch block is rather un-elegant.

Here's my go at it. Not claiming it's highly performant, but I think it's an improvement on your proposal.

public class BinToHex {

    static char[] HEX = {'0','1','2','3','4','5','6','7','8','9','A','B','C','D','E','F'};
    static int[] POW_2 = {1,2,4,8};
    public static String toHex(String bin) {
        int len = bin.length();
        char[] result = new char[(int)Math.ceil(len*1D/4)];
        int pos = result.length-1;
        int hexval = 0;
        for (int i=0; i<len;i++ ){
            hexval += (bin.charAt(len-i-1)-HEX[0]) * POW_2[i%4];
            if ((i+1)%4==0) {
                result[pos--] = HEX[hexval];
                hexval = 0;
            }
        }
        if (pos==0) {
            result[0] = HEX[hexval];
        }
        return new String(result);
    }

    public static void main(String [] param) {
        System.out.println(BinToHex.toHex("1")); // border case 1 char => 0x1
        System.out.println(BinToHex.toHex("101")); // testcase less than 4 chars => 0x5
        System.out.println(BinToHex.toHex("1011")); // testcase eq 4 chars => 0xB
        System.out.println(BinToHex.toHex("101101011011")); // testcase lenght % 4  = 0
        System.out.println(BinToHex.toHex("11101101011011")); // testcase lenght % 4  != 0
        System.out.println(BinToHex.toHex("000101101011011")); // testcase leading 0
    }

}
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1  
PS: BTW, congrats for going beyond homework on researching other alternatives. I'm so tired of "do my homework and plz zend da codez" questions these days that this one was a refreshment. Keep the spirit! (And next time be more specific when asking, to avoid receiving the same 5 answers to a different question) –  maasg Aug 1 '12 at 15:34

How about this: Integer.toHexString(Integer.valueOf(binary, 2))

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I knew about the library, but the point is not to use it... –  Doesn't Matter Aug 1 '12 at 13:18
3  
@Doesn'tMatter Well you didn't say that in your question. –  Hunter McMillen Aug 1 '12 at 13:21

What about using Integer.toString(Integer.parseInt(binaryValue,2),16); ?

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I knew about the library, but the point is not to use it... –  Doesn't Matter Aug 1 '12 at 13:19

Obviously I have skipped any error checking for brevity.

int numInDec = Integer.parseInt(binaryString, 2);
String hexString = Integer.toHexString(numInDec);

http://docs.oracle.com/javase/1.4.2/docs/api/java/lang/Integer.html

Edit: I see you want to avoid the library, why? it is the "more elegant" solution you are looking for.

share|improve this answer
    
well, I was trying to do this without the help of the library, I knew about it before I started but I wanted to do it withou –  Doesn't Matter Aug 1 '12 at 13:24
Long.toHexString(Long.valueOf(binaryString, 2));

If the binary string is longer than 63 bits (long in Java is signed):

new BigInteger(binaryString, 2).toString(16);
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